Advanced Water Management Centre, The University of Queensland, Brisbane, Australia.
Nat Rev Microbiol. 2010 Oct;8(10):706-16. doi: 10.1038/nrmicro2422.
Microbial electrocatalysis relies on microorganisms as catalysts for reactions occurring at electrodes. Microbial fuel cells and microbial electrolysis cells are well known in this context; both use microorganisms to oxidize organic or inorganic matter at an anode to generate electrical power or H(2), respectively. The discovery that electrical current can also drive microbial metabolism has recently lead to a plethora of other applications in bioremediation and in the production of fuels and chemicals. Notably, the microbial production of chemicals, called microbial electrosynthesis, provides a highly attractive, novel route for the generation of valuable products from electricity or even wastewater. This Review addresses the principles, challenges and opportunities of microbial electrosynthesis, an exciting new discipline at the nexus of microbiology and electrochemistry.
微生物电化学依赖于微生物作为催化剂,在电极上发生反应。微生物燃料电池和微生物电解池在这方面是众所周知的;两者都利用微生物在阳极氧化有机或无机物质,分别产生电力或 H(2)。最近发现电流也可以驱动微生物代谢,这导致了生物修复以及燃料和化学品生产中的许多其他应用。值得注意的是,称为微生物电合成的化学品的微生物生产为从电力甚至废水生成有价值的产品提供了一条极具吸引力的新途径。本综述讨论了微生物电合成的原理、挑战和机遇,微生物电合成是微生物学和电化学交叉领域的一个令人兴奋的新学科。